Finite-gap potentials as a semiclassical limit of the thermodynamic Bethe Ansatz
Abstract
We show that the semiclassical limit of thermodynamic Bethe Ansatz equations naturally reconstructs the algebro-geometric spectra of finite-gap periodic potentials. This correspondence is illustrated using the traveling-wave (snoidal) solution of the defocusing modified Korteweg--de Vries equation. In this framework, the Bethe-root distribution of the associated quantum field theory yields an Abelian differential of the second kind on the elliptic Riemann surface specified by the spectral endpoints, a structure central to the algebro-geometric theory of solitons. The semiclassical parameter is identified with the large-rank limit of the internal symmetry group () of the underlying quantum field theory (the Gross-Neveu model with a chemical potential). Our analysis indicates that the analytic structure of the spectrum is dictated solely by the Dynkin diagram () and its large-rank limit (), independently of the particular integrable model used to realize it.
Cite
@article{arxiv.2512.19655,
title = {Finite-gap potentials as a semiclassical limit of the thermodynamic Bethe Ansatz},
author = {Valdemar Melin and Paul Wiegmann and Konstantin Zarembo},
journal= {arXiv preprint arXiv:2512.19655},
year = {2026}
}
Comments
26 pages, 3 figures